WO2010068031A4 - Appareil de blocage sensible à la température pour écoulement de fluide - Google Patents
Appareil de blocage sensible à la température pour écoulement de fluide Download PDFInfo
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- WO2010068031A4 WO2010068031A4 PCT/KR2009/007351 KR2009007351W WO2010068031A4 WO 2010068031 A4 WO2010068031 A4 WO 2010068031A4 KR 2009007351 W KR2009007351 W KR 2009007351W WO 2010068031 A4 WO2010068031 A4 WO 2010068031A4
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- fluid
- temperature
- valve
- flow
- chamber
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D23/00—Control of temperature
- G05D23/01—Control of temperature without auxiliary power
- G05D23/02—Control of temperature without auxiliary power with sensing element expanding and contracting in response to changes of temperature
- G05D23/021—Control of temperature without auxiliary power with sensing element expanding and contracting in response to changes of temperature the sensing element being a non-metallic solid, e.g. elastomer, paste
- G05D23/022—Control of temperature without auxiliary power with sensing element expanding and contracting in response to changes of temperature the sensing element being a non-metallic solid, e.g. elastomer, paste the sensing element being placed within a regulating fluid flow
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- E—FIXED CONSTRUCTIONS
- E03—WATER SUPPLY; SEWERAGE
- E03B—INSTALLATIONS OR METHODS FOR OBTAINING, COLLECTING, OR DISTRIBUTING WATER
- E03B7/00—Water main or service pipe systems
- E03B7/09—Component parts or accessories
- E03B7/10—Devices preventing bursting of pipes by freezing
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D23/00—Control of temperature
- G05D23/01—Control of temperature without auxiliary power
- G05D23/12—Control of temperature without auxiliary power with sensing element responsive to pressure or volume changes in a confined fluid
- G05D23/125—Control of temperature without auxiliary power with sensing element responsive to pressure or volume changes in a confined fluid the sensing element being placed outside a regulating fluid flow
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T137/00—Fluid handling
- Y10T137/1189—Freeze condition responsive safety systems
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T137/00—Fluid handling
- Y10T137/1189—Freeze condition responsive safety systems
- Y10T137/1353—Low temperature responsive drains
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T137/00—Fluid handling
- Y10T137/7722—Line condition change responsive valves
- Y10T137/7737—Thermal responsive
Definitions
- the present invention relates to a temperature-sensitive fluid flow interrupter, and more particularly, to a temperature-sensitive fluid flow interrupter capable of discharging a small amount of a flow fluid inside a fluid flow pipe when a temperature of a temperature-
- the present invention relates to a temperature-sensitive fluid flow interrupter capable of preventing freezing.
- the water inside the water pipe which is a typical fluid flow pipe, becomes frozen when the outside temperature becomes very low as in the winter season, and when the water is frozen in the pipe, the volume increases and cracks occur in the water pipe. Accordingly, various devices and methods have been used to prevent this.
- a temperature-sensitive fluid flow interrupter comprising: a housing installed between an inlet and an outlet of a fluid flow pipe through which a fluid flows; A valve block installed in the housing for introducing a flow fluid in the housing and discharging a part of the flow fluid to the outside of the housing in accordance with a change in internal pressure; And a temperature sensor for generating a pressure difference in the valve block according to a temperature change of the temperature responsive fluid filled in the valve block.
- the temperature of the temperature responsive fluid filled in the temperature sensitive part reaches a predetermined temperature due to a decrease in outside air temperature, a small amount of flow fluid in the housing is discharged to the outside, thereby preventing the fluid flow tube from freezing.
- FIG. 1 is a schematic view showing a configuration of a temperature-sensitive fluid flow interrupter according to a first embodiment of the present invention
- FIG. 2 is a state diagram showing an operation in which the temperature responsive device is expanded when the temperature of the temperature responsive fluid reaches a set temperature in the temperature sensitive fluid flow interrupter of FIG. 1,
- FIG. 3 is a schematic view showing a configuration of a temperature-sensitive fluid flow interrupter according to a second embodiment of the present invention
- FIG. 4 is a state diagram showing an operation in which the temperature responsive device is expanded when the temperature of the temperature responsive fluid reaches a set temperature in the temperature sensitive fluid flow interrupter of FIG. 3,
- FIG. 5 is a detailed view in which a gap chamber is provided in a second flow path between the discharge pipe and the fluid storage chamber in the upper part of the temperature-sensitive fluid flow interrupter of FIG. 3;
- FIG. 6 is a schematic view showing a configuration of a temperature-responsive fluid flow restrictor according to a third embodiment of the present invention.
- FIG. 7 is a state diagram showing an operation in which the temperature responsive device is expanded when the temperature of the temperature responsive fluid reaches a set temperature in the temperature sensitive fluid flow interrupter of FIG.
- FIG. 8 is a detailed view of a holder for varying the set temperature of the temperature responsive fluid.
- FIG. 9 is a schematic view showing a configuration of a temperature-responsive fluid flow restrictor according to a fourth embodiment of the present invention.
- FIG. 10 is a schematic view showing a modified embodiment of the temperature sensitive portion in the temperature sensitive fluid flow interrupter of FIG.
- FIG. 11 is an exemplary view in which a one-way valve is attached to the upper inflow passage of FIG.
- Fig. 13 is a schematic view showing the configuration of a set temperature variable device added to the temperature-responsive fluid flow interrupter of Fig. 9; Fig.
- Fig. 14 is a state diagram showing an operation in which the bellows contracts when the temperature of the flow fluid in the housing reaches the set temperature in the temperature-sensitive fluid flow interrupter of Fig. 9; Fig.
- Fig. 15 is a state diagram showing a state in which the fluid in the pressure relief chamber is transferred to the fluid storage tank, following the bellows contracting operation in Fig. 14;
- FIG. 16 is a state diagram showing a state in which the fluid in the valve chamber is transferred to the pressure release chamber, following the transfer operation of the fluid in the pressure release chamber of Fig. 15 to the fluid storage tank.
- Fig. 17 is a state in which the flow fluid in the fluid storage tank is discharged through the fluid discharge port, following the transfer operation of the valve room fluid of Fig. 16 to the pressure release chamber.
- FIG. 1 shows a configuration of a temperature-sensitive fluid flow interrupter according to a first embodiment of the present invention.
- FIG. 2 is a flow chart of the temperature-responsive fluid flow interrupter of FIG. 1 when the temperature- And the temperature sensitive device is expanded.
- the temperature-sensitive fluid flow interrupter includes an opening 220 through which a part is exposed to the outside, and a fluid (hereinafter referred to as a flow fluid)
- a fluid hereinafter referred to as a flow fluid
- a housing 200 installed in an inlet and an outlet of the fluid flow pipes 120 and 140 through which the fluid flows and a flow fluid in the housing 200 is introduced into the fluid discharge chamber 240
- a valve block 300 installed in the housing 200 so as to communicate with the opening 220 of the housing 200 through the valve body 300 and a pressure difference in the valve block 300 according to the temperature change of the temperature sensitive fluid 471
- a temperature sensor for generating a temperature.
- the set temperature means the temperature of the flow fluid in the housing 200 before freezing.
- a small amount of the flow fluid in the fluid flow pipe is discharged to the outside every time the temperature of the temperature responsive fluid becomes equal to the set temperature due to the lower outside temperature, thereby preventing the flow of the fluid flow pipe.
- the temperature sensor includes a valve block 300 and a cap-shaped temperature sensor 420.
- the valve convex 300 includes a valve chamber 340 and a reaction chamber 320 communicating with each other.
- the temperature sensitive part 420 is filled with the temperature responsive fluid 471 and installed on the valve block 300 by the holder 402.
- the reaction chamber 320 is in communication with the temperature sensing part 420 and the wrinkle part 440 is formed in the temperature sensing part 420 to expand or contract according to the condensation and expansion of the temperature responsive fluid 471, It is preferable that the temperature of the temperature sensitive fluid 417 filled in the sensing part 420 is always lower than the temperature of the flow fluid in the housing 200.
- a piston member 460 is mounted on the inside of the corrugated portion 440 in accordance with the expansion and contraction of the corrugated portion 440.
- a spring 480 is fitted to the outer surface of the piston member 460, 460 are pressed downward.
- the piston member 460 of the temperature sensitive chamber 420 moves up and down in the reaction chamber 320 of the valve block 300 and communicates with the valve chamber 340 through the first flow path 310, Is connected to the fluid discharge chamber 240 through a discharge pipe 360 and a second flow path 314 is connected between the reaction chamber 320 and the discharge pipe 360.
- the valve chamber 340 is provided with an upper inflow passage 322 through which a flow fluid in the housing 200 is introduced with a piston valve 328, a rubber pad valve 324 provided so as to cover the discharge pipe 360, There is provided a lower inflow passageway 326 which is provided to communicate with the discharge pipe 360 when the valve 324 is opened.
- the unillustrated reference numeral 316 under the rubber pad valve 324 in the figure is a seal ring.
- the piston valve 328 is always urged downwardly by the spring 342.
- the piston valve 328 has a predetermined regulation pressure, for example, 1-3 bar, to be pressed the rubber valve 324 to a pressure of kgf / m 2 of the pressure or less, for example, 0.5 kgf / m 2 When the rubber pad valve 324 is pressed by the pressure, the piston valve 328 is lifted and the flow fluid leaks.
- a predetermined regulation pressure for example, 1-3 bar
- a first valve body 380 is provided in the reaction chamber 320 to open and close the first flow path 310 by moving up and down the piston member 460.
- the first valve body 380 includes a hollow member 382, an elastic rubber member 384 inserted into the lower portion of the hollow member 382, and a spring 386 And the contact member 388 is resiliently in contact with the lower end of the piston member 460.
- the rubber member 384 is for enhancing the airtightness of the first flow path 310.
- the piston member 460 When the temperature responsive fluid 471 in the temperature sensitive part 420 is excessively expanded, the piston member 460 is lowered by the expanded pressure, so that the rubber member 384 under the first valve body 380 So that the airtightness is deteriorated due to the breakage of the rubber member 384 and the time point at which the flow fluid is discharged by the degree of pressing is different.
- the present invention prevents the spring member 386 from absorbing and preventing the piston member 460 from pressing the first valve member 380 to a necessary pressure due to excessive expansion of the temperature responsive fluid 471, Thereby preventing the first valve body 380 from being damaged.
- a second valve body 260 is provided in the fluid discharge chamber 240 to open and close the discharge pipe 360.
- the second valve body 260 includes a hollow member 262, An elastic rubber member 266 inserted into the upper portion of the hollow member 262 and a spring 264 having one end inserted into the lower portion and attached to the open portion 220 of the housing 200 so that the other end thereof is attached thereto, .
- the rubber member 266 is also for enhancing the airtightness of the discharge pipe 360.
- the temperature sensing part 420 is filled with gas as the temperature responsive fluid 471.
- gas a freon-based or non-freon-based refrigerant gas generally used in a cooler can be used.
- the piston member 460 is lifted by the spring 480 engaged with the piston member 460 as a space is formed in the temperature sensing part 420.
- the pleated portion 440 also expands.
- the piston member 460 descends and the wrinkle portion 440 contracts.
- the temperature sensitive material other than the above-mentioned gas for example, acetone, alcohol, ethanol, methanol (methanol) may be filled in the temperature sensing part 420.
- the temperature sensitive fluid flow restrictor of the present invention having the above- The wrinkled portion 440 is expanded as the piston member 460 is lifted due to the elasticity of the first valve body 480 and the first valve body 380 closing the first flow path 310 is opened in the reaction chamber 320
- the first flow path 310 is opened and flows through the upper inflow path 322 of the valve chamber 340 to flow into the valve chamber 340 and the flow that has been filled in the first flow path 310
- the fluid begins to flow into the reaction chamber 320.
- the piston valve 328 Since the piston valve 328 is disposed in the upper inflow passage 322, the amount of the flow fluid flowing from the valve chamber 340 through the first flow path 310 to the reaction chamber 320 is larger than the amount of the flow fluid flowing from the valve chamber 340 through the first flow path 310, The amount that flows into the valve chamber 340 through the valve 322 is much smaller. Accordingly, the water pressure of the valve chamber 340, that is, the water pressure above the rubber pad valve 324, becomes low. On the other hand, since the lower portion of the rubber pad valve 324 is under the water pressure by the flow fluid flowing through the lower inflow passage 326 formed in the lower portion of the rubber pad valve 324, A pressure difference is generated between the upper and lower portions thereof.
- the rubber pad valve 324 is raised as shown in FIG. 2, so that the lower inflow passage 326 and the discharge pipe 360 communicate with each other.
- the flow fluid in the housing 200 flows into the discharge pipe 360 and the second valve body 260 of the fluid outlet 240 is lowered so that the discharge pipe 360 is opened, Thereby discharging the flow fluid.
- the temperature of the flow fluid in the fluid flow pipes 120 and 140 is always kept above the set temperature, thereby preventing the fluid flow pipes 120 and 140 from freezing.
- the fluid flow pipe is referred to as a water pipe
- the water pressure of the water pipe is usually about 2-3 kgf / cm 2
- the flow rate when the flow fluid, that is, water is discharged to the outside is very fast. Therefore, when the flow fluid is discharged by the Bernoulli's principle, all the flow fluid flowing into the discharge pipe 360 through the second flow path 314 is also discharged, so that the upper inflow path 322 is closed with the closed valve chamber 340
- the storage chamber 320 and the second flow path 314 are always maintained in an empty state without flowing fluid.
- the temperature responsive fluid 471 in the temperature responsive part 420 When the temperature responsive fluid 471 in the temperature responsive part 420 is below the predetermined temperature, a small amount of the flow fluid in the fluid flow pipes 120 and 140 is discharged through the open part 220 of the housing 200 for a predetermined period of time . However, if 100% of the specified amount of emission is not discharged at the initial stage of discharge, the discharged flow fluid may be frozen to close the openings 220. Therefore, it would be desirable to narrow the gap between the point of time to prevent this and the point of time at which the discharge is stopped and the time at which the discharge is stopped, that is, the smooth start and stop of discharge can minimize the consumption of the discharge water.
- the first valve body 380 pushed in the piston member 460 in the reaction chamber 320 and the second valve body 380 pressed in the second valve body 260 of the fluid discharge chamber 240 Lt; / RTI >
- the contact member 388 of the first valve body 380 is pressed by the piston member 460 in a state where the contact member 388 of the first valve body 380 is resiliently biased by the spring 386, can do.
- the second valve body 260 is also urged upward by the spring 264 so that the discharge pipe 360 can be quickly closed to smoothly stop the discharge of the flow fluid.
- FIG. 3 shows a configuration of a temperature-responsive fluid flow interrupter according to a second embodiment of the present invention.
- FIG. 4 is a flow chart of the temperature-responsive fluid flow- Which indicates the operation of expanding the machine.
- the temperature-sensitive fluid flow interrupter according to the second embodiment of the present invention shown in Figs. 3 and 4 is a device for controlling the discharge flow rate when discharging the initial flow fluid, Since the structure of the discharge flow rate regulator is added in place of the fluid discharge chamber of the embodiment, the same components as those of the embodiment of FIGS. 1 and 2 are denoted by the same reference numerals, and a detailed description thereof has been omitted.
- a discharge flow rate controller is provided in the second flow path 314 shown in Figs. 1 and 2.
- the discharge flow regulator comprises a fluid storage chamber (520) and a second valve chamber (540) communicating with the fluid storage chamber (520).
- the discharge pipe 360 is configured as an orifice pipe at its center, the upper portion communicates with the second valve chamber 540, and the lower portion communicates with the fluid storage chamber 520.
- the fluid storage chamber 520 includes a valve member 522 installed to open and close the second flow path 314 and a spring 524 installed to press the valve member 522 downward.
- the flow fluid in the reaction chamber 320 flows through the second flow path 314.
- the fluid storage chamber 520 is provided with a third flow path 362 communicating with the lower discharge pipe 360 at a predetermined height.
- the valve member 522 ascends over a predetermined height, the third flow path 362 And discharges the introduced flow fluid through the lower discharge pipe 360.
- the second valve chamber 540 is configured similar to the valve chamber 340 so that the piston 544 is interposed in the communication passage 542 with the fluid storage chamber 520 to be introduced into the fluid storage chamber 520 And a rubber pad valve 346 installed to cover the second flow path 314.
- a negative pressure is generated in the second valve chamber 540 due to the flow velocity of the flow fluid discharged through the discharge pipe 360, so that a part of the flowing fluid is sucked through the second flow path 314 Come on.
- the rubber pad valve 346 is then closed as the piston valve 544 is lowered by the spring 524.
- a second flow path 314 between the upper discharge pipe 360 and the second valve chamber 540 is provided with a resistance shaft 620 The gap chamber 600 is operated.
- the temperature sensitive fluid flow interrupter allows the fluid to flow at all times in the fluid flow pipe by repeating the above operation so that even when the outside air temperature is lowered, The freezing of the fluid flow pipe is prevented as the fluid of the freezing chamber is not frozen.
- FIG. 6 shows a configuration of a temperature-sensitive fluid flow interrupter according to a third embodiment of the present invention.
- the temperature-sensitive fluid flow restrictor according to the third embodiment of the present invention includes an opening 722 through which a part is exposed to the outside, and fluid flow pipes 712 and 724
- a housing 720 installed between the inlet 712 and the outlet 714 of the housing 720 and a housing 720 for introducing a flow fluid in the housing 720 and a small amount of flow fluid to the fluid outlet 724
- a valve block 730 installed in the housing 720 so as to communicate with the opening 722 of the housing 720 through the valve 730 and a pressure difference in the valve block 730 according to the temperature change of the temperature responsive fluid 771
- a temperature sensor that generates heat.
- the temperature sensitive fluid flow restrictor generates a pressure difference in the valve block 730 by the temperature sensitive part 774 when the temperature of the temperature responsive fluid 771 reaches the set temperature And is configured to discharge the flow fluid in the valve block 730 to the outside through a fluid outlet 724 communicated with the opening 722 of the housing 720.
- a small amount of the flow fluid is discharged to the outside of the housing 720 So that the temperature of the flow fluid in the fluid flow pipes 712 and 714 is always maintained at the set temperature or higher, thereby preventing the fluid flow pipes 712 and 714 from being frozen.
- the valve block 730 is provided with a temperature sensitive chamber 740, a pressure relief chamber 750, and a valve chamber 760.
- the temperature responsive chamber 740 is disposed in the opening 722 of the housing 720 and includes a temperature sensitive portion 774 having a corrugated portion 772 formed thereon and a corrugated portion 772 of the temperature sensitive portion 774, And upper and lower communicating tubes 777 and 779 provided so as to communicate with upper and lower portions of the temperature responsive chamber 740 through the fluid outlet 724, respectively, Lt; / RTI >
- the temperature sensitive fluid 771 is filled in the temperature sensitive part 774 and the temperature of the temperature sensitive fluid 771 is always lower than the temperature of the flowing fluid in the housing 720.
- a first piston valve 754 is installed in the pressure release chamber 750 to apply pressure to the housing 720 by opening and closing a communication path 752 communicating with the temperature sensing chamber 740.
- the valve chamber 760 an upper inflow passage 764 through which the second piston valve 762 is inserted to introduce the flow fluid into the housing 720, a connection pipe 766 connected to the pressure release chamber 750, A rubber pad valve 768 provided at the lower portion of the upper inlet passage 764 and the connection pipe 766 to cover the fluid outlet 724 and a fluid outlet 724 at the time of opening of the rubber pad valve 768
- An installed lower inflow passage 769 is formed.
- a predetermined gap is formed between the upper portion of the corrugated portion 772 of the temperature sensitive portion 774 and the first piston valve 754 and a flow fluid as the temperature sensitive fluid 771 is formed in the temperature sensitive portion 774, The water is filled.
- the temperature responsive fluid 771 of this embodiment has a characteristic of expanding when the temperature of the outside is lowered, and contracting when the temperature is higher. Accordingly, when the temperature of the outside is lowered and the temperature responsive fluid 771 is inflated, the corrugated portion 772 expands to raise the first piston valve 754. When the temperature rises, the temperature responsive fluid 771 contracts again And the first piston valve 754 is lowered.
- the temperature responsive fluid other than the above-mentioned fluid may be filled in the temperature sensitive portion 774, as long as it expands when the temperature is lowered and shrinks when the temperature becomes higher.
- the temperature of the temperature responsive fluid in the temperature responsive portion 774 must be lower than the heat capacity of the flowable fluid in the fluid flow tube.
- the size of the temperature sensitive portion 774 is preferably smaller than the size of the fluid flow pipes 712 and 714.
- the lower portion of the rubber pad valve 768 is connected to the lower inflow passageway (not shown) formed in the lower portion of the rubber pad valve 768, Since the hydraulic pressure is applied by the flow fluid flowing through the rubber pad valve 768, 7, so that the lower inflow passage 769 and the fluid discharge opening 724 are communicated with each other, whereby the housing 720 is opened, Flows into the fluid outlet 724 and then flows into the lower portion of the temperature responsive chamber 740 formed in the opening 722 of the housing 720 through the lower inlet passage 769 connected to the fluid outlet 724 .
- the second piston valve 762 moves up and down along the upper inflow passage 764 in conjunction with the opening and closing of the rubber pad valve 768. Accordingly, the foreign matter that can accumulate between the wall surface of the upper inflow passage 764 and the second piston valve 762 can be removed, thereby improving the lifetime and operational reliability of the present flow interrupter.
- the reference numerals 751 and 761 denote airtightness in the portion where the first piston valve 754 of the pressure release chamber 750 and the second piston valve 762 of the valve chamber 760 are opened and closed, respectively And a rubber ring to be provided.
- a one-way valve is provided in the upper inflow passage 764 of the valve chamber 760 so that the flow fluid flowing through the upper inflow passage 764 flows backward.
- the third embodiment of the present invention may further include a set temperature variable device to adjust the opening and closing timing of the first piston valve 776 so that the set temperature can be varied.
- the set temperature variable unit 780 includes a holder 776 formed to be adjustable in the screw thread on the inner wall of the temperature sensitive chamber 740 and a screw 776 formed on the outer surface of the holder 776, And is connected to a threaded portion formed on the inner wall of the chamber 58. By adjusting the screw, it is possible to control the time at which the flow fluid in the pressure release chamber 750 flows into the temperature responsive chamber 740.
- the temperature sensitive fluid 771 filled in the temperature sensitive portion 774 is reduced by the adjustment of the screw so that the gap between the upper portion of the wrinkle portion 772 and the first piston valve 754 is reduced as shown by a solid line in FIG.
- the first piston valve 754, which has closed the communication passage 752 by the pressure of the flow fluid, is raised.
- the time when the flow fluid introduced into the pressure-releasing chamber 750 flows into the temperature responsive chamber 740 is increased.
- the first piston valve 752 which closes the communication path 752, (754) is raised. Therefore, the time when the flow fluid in the pressure release chamber 750 flows into the temperature responsive chamber 740 is delayed.
- the fluid flow pipe is referred to as a water pipe
- the water pressure of the water pipe is usually about 2 to 3 kgf / cm 2 , so the flow rate when the fluid is discharged to the outside is very fast. Therefore, the fluid discharge port 724 and the upper portion of the temperature responsive chamber 740 are communicated by the upper communicating pipe 777, so that the fluid discharge port 724 and the fluid discharge port 724 are connected to each other,
- the flow fluid in the upper portion of the temperature responsive chamber 740 is also moved to the fluid outlet 724 through the upper communicating tube 777 by the pressure difference between the fluid inlet 724 and the upper portion of the temperature responsive chamber 740, . Since the fluid in the temperature responsive chamber 740 is discharged through the fluid outlet 724 as described above, the upper communicating tube 777 is always kept clean.
- the flow fluid introduced into the housing 720 through the inlet 712 of the fluid flow pipe is pressurized by the hydraulic pressure to the valve chamber 760 and the pressure release
- the temperature responsive fluid 771 which is filled in the chamber 750 and filled in the temperature sensitive portion 774
- the first piston valve 754 maintains a constant clearance with the corrugated portion 772 on the upper portion of the temperature responsive portion 774 and the flow of fluid filled in the pressure- So that the communication path 752 is closed.
- the temperature responsive fluid 771 filled in the temperature sensitive portion 774 reaches the set temperature for discharging the flowing fluid in the housing 720, that is, water before freezing, And the temperature responsive portion 774 senses this.
- the temperature responsive portion 774 is smaller than the fluid flow tube and the temperature of the temperature responsive fluid 771 in the temperature sensitive portion 774 is lower than the temperature of the fluid flowing in the fluid flow tube, The temperature sensitive fluid 771 in the temperature sensitive portion 774 begins to freeze before the flow fluid. However, since the density of the temperature responsive fluid 771 is about 10% lower than the density of the flowing fluid (the volume of ice at the same mass is about 10% larger than the volume of water) The wrinkled portion 772 is expanded. The first piston valve 754 is lifted by pushing up the first piston valve 754 by the inflation of the predetermined gap of the corrugated portion 772 as described above to open the communication path 752.
- the flow fluid in the pressure releasing chamber 750 then flows into the temperature responsive chamber 740 through the communication passage 752 and then to the fluid outlet 724 through the upper communicating tube 777. At this time, since the pressure release chamber 750 is communicated with the valve chamber 760 by the connection pipe 766, the flow fluid filled in the valve chamber 760 flows through the connection pipe 766 to the pressure release chamber 750 ).
- the amount of fluid flowing into the valve chamber 760 through the upper inflow passage 764 flows through the upper inflow passage 764 since the second piston valve 762 is interposed in the upper inflow passage 764
- the fluid flows through the gap with the second piston valve (26). Therefore, in the valve chamber 760, a much smaller amount than the amount that is transferred to the pressure relief chamber 750 through the connection pipe 766 is introduced. Accordingly, the water pressure of the valve chamber 760, that is, the water pressure above the rubber pad valve 768, becomes low. However, since the lower portion of the rubber pad valve 768 is under the water pressure by the fluid that has flowed into the lower inflow passage 769 formed at the lower portion of the rubber pad valve 768, The water pressure difference is generated.
- the rubber pad valve 768 is expanded upward as shown in Fig. 7, so that the lower inflow passage 769 and the fluid discharge port 724 communicate with each other.
- the flow fluid in the housing 720 flows into the lower inflow passage 769 and is discharged to the fluid outlet 724 and discharged to the lower portion of the temperature responsive chamber 740 through the lower communicating tube 79.
- the hydraulic pressure of the fluid flow pipe which is generally referred to as a water pipe
- the flow rate when the fluid is discharged to the outside is very fast. Therefore, a negative pressure is generated in the fluid outlet 724 after fluid discharge by the Bernoulli principle. Since the fluid outlet 724 and the upper portion of the temperature responsive chamber 740 are communicated by the upper communicating tube 777, the temperature difference between the fluid outlet 724 and the upper portion of the temperature responsive chamber 740 The fluid above the chamber 740 is also transferred to the fluid outlet 724 through the upper communicating tube 777 and discharged to the lower portion of the temperature responsive chamber 740 through the lower communicating tube 79.
- the fluid above the temperature responsive chamber 740 and the fluid flowing through the housing 720 are discharged to the fluid outlet 724 and discharged to the lower portion of the temperature responsive chamber 740 through the lower communicating tube 779, And the lower part of the temperature sensitive part 774 is brought into contact. Since the temperature of the discharged flow fluid is higher than the temperature of the temperature responsive fluid 771 in the temperature sensitive portion 774, the temperature of the discharged flow fluid in the temperature sensitive portion 774 The frozen ice will melt. As a result, the volume of the flow fluid inside the temperature sensitive portion 774 is reduced, and the corrugated portion 772 is also contracted. As a result, the first piston valve 754 is no longer pushed up. Accordingly, the first piston valve 754 closes the communication passage 752 again. In addition, when the hydraulic pressure in the valve chamber 760 gradually increases and the hydraulic pressure difference between the upper and lower portions of the rubber pad valve 768 disappears, the rubber pad valve 768 returns to its original state to close the fluid outlet 724, Stop discharging.
- the temperature-sensitive fluid flow interrupter of the present invention causes the fluid to flow continuously in the fluid flow pipe by repeating the above-mentioned operation so that the fluid inside the fluid flow pipe does not freeze without external power supply even if the outside air temperature is low To prevent the fluid flow tube from freezing.
- FIG. 9 shows a configuration of a temperature-responsive fluid flow interrupter according to a fourth embodiment of the present invention.
- FIG. 10 is a modified embodiment of the temperature sensor of FIG. 9, in which the shaft is lifted and lowered
- Fig. 11 is an exemplary view in which a one-way valve is attached to the upper inflow passage of Fig. 9,
- Fig. 12 is an exemplary view in which a fluid outlet is communicated to a faucet, and Fig. And shows the configuration of the set temperature variable device.
- the temperature sensing type fluid flow interrupter includes a fluid flow pipe 812, 814, A communication pipe 882 for introducing a flow fluid in the housing 820 and discharging a small amount of flow fluid through the fluid outlet 822 to the outside of the housing 820 in accordance with a change in internal pressure; A valve block 880 formed in the housing 820 and a valve block 880 installed in the valve block 880 so as to increase or decrease the pressure in the valve block 880 according to the temperature change of the flow fluid in the housing 820 And a temperature sensor 890 installed therein.
- the temperature responsive fluid flow restrictor is capable of controlling the pressure in the valve block 880 by the contraction of the temperature sensor 890 when the temperature of the flow fluid in the housing 820 reaches the set temperature, To discharge the flow fluid in the valve block 880 to the outside of the housing 820 through the fluid outlet 822.
- the set temperature means the temperature of the flow fluid in the housing 200 before freezing.
- a small amount of flow fluid is discharged to the outside every time the outside air temperature is lowered and the temperature of the flowing fluid in the housing 820 becomes equal to the set temperature, so that the temperature of the fluid in the fluid flow pipes 812, So as to prevent the fluid flow pipes 812 and 814 from being frozen.
- a fluid reservoir tank 830 communicating with the communicating pipe 882 and a pressure relief chamber 840 communicating with the fluid reservoir tank 830 through the communicating portion 832 are provided in the valve block 880, And a valve chamber 870 connected through a pressure relief chamber 840 and a connection pipe 836.
- the seal member 850 is hinge- The flow fluid in the housing 820 flows into the valve chamber 870, the connecting tube 836 and the pressure relief chamber 840 through the upper inflow passage 872 formed at one side of the valve chamber 870.
- the pressure release chamber 840 is provided with a first piston valve 842 for opening and closing the communicating portion 832.
- One end 852 of the seesight member 850 is opened / And the other end 854 is interlocked with the opening and closing of the first piston valve 842 of the pressure release chamber 840.
- the temperature sensor 890 includes a shaft 892 installed to move up and down through the communicating tube 882 of the valve block 880, a pressure compensating spring 894 for pressing the shaft 892 in one direction, A bellows 898 attached to the shaft so that the shaft 892 ascends and descends in accordance with the contraction and expansion of the temperature responsive fluid 871; .
- the bellows 898 is preferably sealed so that the gas stored in the gas reservoir 896 does not pass through the communicating tube 882.
- the temperature of the fluid in the housing 820 is affected by the temperature of the fluid flowing in the housing 820.
- the flow of the fluid may be controlled in response to the temperature of the external remote.
- the gas 871 stored in the gas storage chamber 896 is supplied through the gas connection pipe 895 from the temperature responsive gas source 910 located at a remote location.
- the gas stored in the gas storage chamber 896 can be, in principle, all of the gas whose pressure varies with temperature, and the gas in a saturated state (state in which liquid and gas are present) desirable.
- a freon-based or non-freon-based refrigerant gas generally used in a cooler can be used.
- the temperature sensitive fluid 871 filled in the gas storage chamber 896 condenses.
- the pressure compensation spring 894 and the bellows 898 are elongated to expand the bellows 898, so that the shaft 892 and the one end 852 of the seesaw member 850 are positioned at the center of the hinge axis 851 .
- the first piston valve the first piston valve
- the temperature sensitive fluid 871 filled in the gas storage chamber 896 expands.
- the pressure compensation spring 894 and the bellows 898 are again compressed and the bellows 898 is corrugated so that the shaft 892 and the one end 852 of the seam member 850 are connected to the hinge shaft 851 While the other end 854 of the seesaw member 850 is moved upward about the hinge axis 851.
- the first piston valve 842 thus opened is raised by the inflow pressure of the flow fluid to close the communication portion 832 so that the flow fluid filled in the pressure release chamber 840 flows through the communication portion 832 Is prevented from flowing into the fluid storage tank 830.
- the temperature sensor 890 of the modified embodiment attaches the deformation member 900 deformed in accordance with the temperature change to the shaft 892 and the support member 902 to move the shaft 892 up and down So that a detailed description thereof will be omitted.
- the deformable member 900 for example, a bimetal, a shape memory alloy, or a material having a large thermal expansion coefficient may be used.
- the shaft 892 and the first piston valve 842 are interlocked by the seesight member 850.
- the deformation member 900 is not directly shown, The shaft 892 and the first piston valve 842 may be interlocked with each other without the configuration of the seesaw member 850.
- valve chamber 870 is formed with an upper inflow passage 872 having a second piston valve 876 interposed therebetween, and is connected to the pressure release chamber 840 through a connection pipe 836 have.
- a rubber pad valve 860 is provided to open and close the fluid outlet 822 at the lower portion of the connecting pipe 836 and the upper inflow passage 872.
- the rubber pad valve 860, And a lower inflow passage 858 is formed so as to communicate with the discharge port 822.
- the flow fluid in the housing 820 flows into the valve chamber 870 through the upper inflow passage 872 while the second piston valve 876 is interposed with the minute gap in the upper inflow passage 872. [ Therefore, the amount of the flow fluid flowing into the valve chamber 870 through the upper inflow passage 872 is minute.
- the second piston valve 876 moves up and down along the upper inflow passage 872 in conjunction with the opening and closing of the rubber pad valve 860.
- the reference numerals 744 and 778 denote airtightness in the portion where the first piston valve 842 of the pressure release chamber 840 and the second piston valve 876 of the valve chamber 870 are opened and closed, respectively And a rubber ring to be provided.
- the one-way valve 862 is provided in the upper inflow passage 872 of the valve chamber 870 to prevent the flow fluid flowing through the upper inflow passage 872 from flowing backward and being discharged.
- the one-way valve 862 is composed of a valve and a spring for supporting the valve.
- the fluid in the housing 820 flows through the upper inflow passage 872 by using a spring having a low elastic modulus.
- (870) prevents backflow to the housing (820), thereby improving the reliability of the device.
- the fluid outlet 822 may not be connected to the outside of the housing 820 but may be connected to the faucet 810 provided at the inlet 812 or the outlet 814 of the fluid flow pipe.
- the temperature-sensitive fluid flow restrictor may vary the set temperature at which the flow fluid in the housing 820 is discharged.
- the simplest method is to use a pressure compensation spring 894 having different elastic modulus values.
- the temperature sensitive fluid flow interrupter according to the embodiments of the present invention further includes a set temperature variable device capable of varying the set temperature You may.
- the set temperature variable device 920 is configured to adjust the tilt of the seesaw member 850 of the valve block 880 coupled to the lower end of the shaft 892 of the temperature sensor 890, One end 852 of the seesaw member 850 is inserted into the guide hole 884 formed in the lower side of the shaft 892 and the adjustment screw 922 screwed into the screw groove 886 formed at the lower end of the shaft 892 Lt; / RTI >
- the opening timing of the first piston valve 842 in a state in which the communication portion 832 is closed by the pressure of the flow fluid is accelerated.
- the adjustment screw 922 is adjusted so that the slope of the seesight member 850 is lowered, the opening timing of the first piston valve 842 is delayed.
- the fluid storage tank 830 communicates with the outside air through the air passage 834 communicating with the outside air and communicates with the fluid outlet 822 through the discharge passage 838 to generate a negative pressure at the fluid outlet 822
- the flow fluid inside the fluid storage tank 830 flows into the fluid outlet 822 through the discharge passage 838 and is discharged.
- the discharge passage 838 is always kept clean by discharging all the fluid remaining in the discharge passage 838.
- FIG. 14 the operation of the temperature-sensitive fluid flow interrupter according to the fourth embodiment of the present invention will be described with reference to FIGS. 14 to 17.
- FIG. 14 the operation of the temperature-sensitive fluid flow interrupter according to the fourth embodiment of the present invention will be described with reference to FIGS. 14 to 17.
- the fluid in the housing 820 is filled in the valve chamber 870 and the pressure relief chamber 840 by water pressure.
- the temperature sensor 890 senses the temperature of the flow fluid in the housing 820 when the temperature of the outside fluid reaches a preset temperature.
- the gas 871 in the gas reservoir 896 is condensed so that the pressure compensating spring 894 and the bellows 98 are stretched as shown in Figure 14 while the shaft 892 and september 850
- the first end 852 is lifted up, as shown in FIG.
- the other end 854 of the seesaw member 850 descends about the hinge axis 851, and the pressure of the flow fluid flowing into the pressure-releasing chamber 840 causes the first
- the piston valve 842 is pushed, and the first piston valve 842 is lowered as shown in FIG.
- the pressure release chamber 840 communicates with the fluid storage tank 830 through the communication portion 832, so that the fluid in the pressure release chamber 840 flows into the fluid storage tank 830).
- the fluid in the valve chamber 870 also moves to the pressure relief chamber 840 through the connection pipe 836.
- the amount of the fluid flowing into the valve chamber 870 through the upper inflow passage 872 is such that the second piston valve 876 is interposed in the upper inflow passage 872 and flows through the upper inflow passage 872 Is introduced through the gap with the second piston valve (876). Therefore, in the valve chamber 870, much less amount is introduced than through the connecting tube 836 to the pressure relief chamber 830. Accordingly, the water pressure of the valve chamber 870, that is, the water pressure above the rubber pad valve 860, becomes low. However, since the lower portion of the rubber pad valve 860 is under the water pressure by the fluid that has flowed into the lower inflow passage 874 formed in the lower portion of the rubber pad valve 860, The water pressure difference is generated.
- the water pressure of the water pipe is usually about 2 to 3 kgf / cm 2 , so the flow rate when the fluid is discharged to the outside is very fast. Therefore, a negative pressure is generated in the fluid outlet 822 after fluid discharge by the Bernoulli principle. Since the fluid outlet 822 and the fluid reservoir tank 830 communicate with each other through the discharge passage 838, the pressure difference between the fluid outlet 822 and the fluid reservoir tank 830 causes the fluid reservoir 830 The fluid also flows through the discharge passage 838 to the fluid outlet 822 and is discharged through the fluid outlet 822.
- the fluid storage tank 830 When the fluid in the fluid storage tank 830 is completely discharged through the fluid outlet 822 as described above, the fluid storage tank 830 is in communication with the outside air by the discharge passage 838, To the fluid outlet port 822 through the fluid outlet port 822. Since the fluid remaining in the discharge passage 838 is cleaned in accordance with the flow of the air, the discharge passage 838 is always kept clean.
- the temperature-sensitive fluid flow interrupter of the present invention causes the fluid to flow continuously in the fluid flow pipe by repeating the above-mentioned operation so that the fluid inside the fluid flow pipe does not freeze without external power supply even if the outside air temperature is low To prevent the fluid flow tube from freezing.
Landscapes
- Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Fluid Mechanics (AREA)
- General Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Hydrology & Water Resources (AREA)
- Public Health (AREA)
- Water Supply & Treatment (AREA)
- Temperature-Responsive Valves (AREA)
- Domestic Plumbing Installations (AREA)
Abstract
Priority Applications (6)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
RU2011128407/06A RU2481522C2 (ru) | 2008-12-10 | 2009-12-09 | Устройство для управления потоком термочувствительной текучей среды |
US13/139,088 US8561914B2 (en) | 2008-12-10 | 2009-12-09 | Temperature-responsive fluid flow control apparatus |
EP09832116.9A EP2369210B1 (fr) | 2008-12-10 | 2009-12-09 | Appareil de blocage sensible à la température pour écoulement de fluide |
JP2011540604A JP5714500B2 (ja) | 2008-12-10 | 2009-12-09 | 温度感応型流体流れ断続装置 |
CN200980149724XA CN102245949B (zh) | 2008-12-10 | 2009-12-09 | 温度感应型流体流动控制设备 |
HK12104836A HK1164415A1 (en) | 2008-12-10 | 2012-05-16 | Temperature-responsive fluid flow control apparatus |
Applications Claiming Priority (6)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
KR10-2008-0125055 | 2008-12-10 | ||
KR1020080125055A KR100901269B1 (ko) | 2008-12-10 | 2008-12-10 | 온도감응형 유체흐름 단속장치 |
KR10-2009-0008875 | 2009-02-04 | ||
KR1020090008875A KR101041100B1 (ko) | 2009-02-04 | 2009-02-04 | 온도감응형 유체흐름 단속장치 |
KR1020090111530A KR101142059B1 (ko) | 2009-11-18 | 2009-11-18 | 온도감응형 유체흐름 단속장치 |
KR10-2009-0111530 | 2009-11-18 |
Publications (3)
Publication Number | Publication Date |
---|---|
WO2010068031A2 WO2010068031A2 (fr) | 2010-06-17 |
WO2010068031A3 WO2010068031A3 (fr) | 2010-08-05 |
WO2010068031A4 true WO2010068031A4 (fr) | 2010-09-23 |
Family
ID=42243212
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/KR2009/007351 WO2010068031A2 (fr) | 2008-12-10 | 2009-12-09 | Appareil de blocage sensible à la température pour écoulement de fluide |
Country Status (7)
Country | Link |
---|---|
US (1) | US8561914B2 (fr) |
EP (1) | EP2369210B1 (fr) |
JP (1) | JP5714500B2 (fr) |
CN (1) | CN102245949B (fr) |
HK (1) | HK1164415A1 (fr) |
RU (1) | RU2481522C2 (fr) |
WO (1) | WO2010068031A2 (fr) |
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KR101236821B1 (ko) | 2011-03-15 | 2013-03-11 | (주)수도프리미엄엔지니어링 | 동파방지 장치 |
CA2884392C (fr) * | 2013-05-16 | 2018-01-30 | O2I Ltd. | Appareil de regulation pour soupape unidirectionnelle activee par pression |
CN103556681A (zh) * | 2013-11-15 | 2014-02-05 | 卢云飞 | 供水管网区间压力智能补偿系统 |
CN104676091B (zh) * | 2015-03-13 | 2017-03-29 | 佛山市顺德区美的洗涤电器制造有限公司 | 用于进水阀的开关组件和进水阀 |
CN104879544B (zh) * | 2015-05-27 | 2019-01-04 | 中国科学院等离子体物理研究所 | 大型低温系统用快速切断阀门 |
CN104989868B (zh) * | 2015-06-21 | 2017-10-31 | 门立山 | 一种温控伸缩管 |
KR102394995B1 (ko) * | 2016-08-11 | 2022-05-04 | 도쿄엘렉트론가부시키가이샤 | 고순도 분배 유닛 |
US11521757B2 (en) * | 2018-05-25 | 2022-12-06 | Curtiss-Wright Flow Control Corporation | Inadvertent actuation block valve for a small modular nuclear reactor |
CN110081210B (zh) * | 2019-04-30 | 2023-12-08 | 浙江师范大学 | 一种气液混输负压磁力气控复合阀及其控制方法 |
FR3105337B1 (fr) * | 2019-12-18 | 2022-03-25 | Vernet | Dispositif de commande de l’écoulement d’un fluide |
CN116025755A (zh) * | 2022-04-27 | 2023-04-28 | 宁波方太厨具有限公司 | 防冻裂阀体及包含其的燃气热水器 |
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-
2009
- 2009-12-09 US US13/139,088 patent/US8561914B2/en active Active
- 2009-12-09 EP EP09832116.9A patent/EP2369210B1/fr not_active Not-in-force
- 2009-12-09 RU RU2011128407/06A patent/RU2481522C2/ru not_active IP Right Cessation
- 2009-12-09 WO PCT/KR2009/007351 patent/WO2010068031A2/fr active Application Filing
- 2009-12-09 CN CN200980149724XA patent/CN102245949B/zh not_active Expired - Fee Related
- 2009-12-09 JP JP2011540604A patent/JP5714500B2/ja active Active
-
2012
- 2012-05-16 HK HK12104836A patent/HK1164415A1/xx not_active IP Right Cessation
Also Published As
Publication number | Publication date |
---|---|
EP2369210B1 (fr) | 2018-03-28 |
CN102245949B (zh) | 2013-11-06 |
RU2011128407A (ru) | 2013-01-20 |
EP2369210A4 (fr) | 2014-07-02 |
CN102245949A (zh) | 2011-11-16 |
WO2010068031A3 (fr) | 2010-08-05 |
JP2012511650A (ja) | 2012-05-24 |
JP5714500B2 (ja) | 2015-05-07 |
RU2481522C2 (ru) | 2013-05-10 |
HK1164415A1 (en) | 2012-09-21 |
US20110240144A1 (en) | 2011-10-06 |
EP2369210A2 (fr) | 2011-09-28 |
WO2010068031A2 (fr) | 2010-06-17 |
US8561914B2 (en) | 2013-10-22 |
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